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LEO SPACECRAFT RELATIVE MOTION DYNAMICS MODELING AND SOLVING

机译:狮子座航天器相对运动动力学建模与解决

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Relative motion dynamics is the basis of spacecraft formation flying, simple and reasonable relative motion model is very important to navigation, guidance and control. CW equations were modeled under some assumptions, i.e. a circular reference orbit, linearized differential gravity, and without any perturbations. The applicability of CW equations are limited because the assumptions are always violated in practice, thus the needs of spacecraft formation flying mission, especially long-term formation flying, can not be met. Under the background of spacecraft formation flying, this paper presents an approximate relative motion dynamical model that considers the eccentricity of the reference orbit, the second order nonlinear differential gravity and the J2 perturbation. Numerical simulations are carried out to verify the accuracy. And comparisons are also made between this model and a class of models which were derived by directly adding the perturbations onto the right hand side of Lawden equations or CW equations. Results show that the model presented in this paper is more accurate. Furthermore, the perturbation theory is used to obtain the analytical solution to the model which ignores the effect of J2. Simulation results show that when the eccentricity is 0 to 0.05, the error of the analytical solution is less than 10% of the relative motion scale during five resolutions of the target spacecraft.
机译:相对运动动力学是航天器编队飞行,简单而合理的相对运动模型的基础是导航,制导与控制非常重要。 CW方程下一些假设建模,即一个循环引用轨道,线性差动重力,且无任何扰动。 CW方程的应用受到限制,因为假设在实践中经常受到侵犯,因此飞行任务的航天器编队的需求,尤其是长期编队飞行,不能得到满足。下形成的航天器飞行的背景,本文提出考虑了参考轨道的偏心率,二阶非线性微分重力和J2扰动的近似相对运动动力学模型。数值模拟进行了验证的准确性。和比较结果也这个模型和类模型其通过直接添加到扰动方程Lawden或CW方程的右手侧衍生之间进行比较。结果表明,在本文提出的模型更精确。此外,扰动理论用于获得解析解,其忽略J2的效果模型。仿真结果表明,当偏心为0〜0.05,在分析溶液的误差是相对运动的规模小于10%时的目标航天器的五项决议。

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